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A short history of the development of mathematical models of cardiac mechanics

机译:心脏力学数学模型发展的简史

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摘要

Cardiac mechanics plays a crucial role in atrial and ventricular function, in the regulation of growth and remodelling, in the progression of disease, and the response to treatment. The spatial scale of the critical mechanisms ranges from nm (molecules) to cm (hearts) with the fastest events occurring in milliseconds (molecular events) and the slowest requiring months (growth and remodelling). Due to its complexity and importance, cardiac mechanics has been studied extensively both experimentally and through mathematical models and simulation.Models of cardiac mechanics evolved from seminal studies in skeletal muscle, and developed into cardiac specific, species specific, human specific and finally patient specific calculations. These models provide a formal framework to link multiple experimental assays recorded over nearly 100 years into a single unified representation of cardiac function. This review first provides a summary of the proteins, physiology and anatomy involved in the generation of cardiac pump function. We then describe the evolution of models of cardiac mechanics starting with the early theoretical frameworks describing the link between sarcomeres and muscle contraction, transitioning through myosin-level models to calcium-driven systems, and ending with whole heart patient-specific models.
机译:心脏力学在心房和心室功能,生长和重塑的调节,疾病的进展以及对治疗的反应中起着至关重要的作用。关键机制的空间尺度范围从nm(分子)到cm(心脏),最快的事件以毫秒为单位(分子事件)发生,而最慢的时间以月份(增长和重塑)为宜。由于其复杂性和重要性,已通过实验以及数学模型和仿真对心脏力学进行了广泛的研究。心脏力学模型是从骨骼肌的开创性研究发展而来,并发展为针对心脏的,针对物种的,针对人类的以及最终针对患者的计算。这些模型提供了一个正式的框架,可以将记录了将近100年的多种实验方法链接到单一的心脏功能统一表示中。本文首先概述了心脏泵功能产生中涉及的蛋白质,生理学和解剖学。然后,我们从描述肉瘤和肌肉收缩之间联系的早期理论框架开始,描述心肌力学模型的演变,然后通过肌球蛋白水平模型过渡到钙驱动系统,最后以全心患者特定模型结束。

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